Abstract
The primary interaction of tetanus toxin and toxoid with mouse neuroblastoma cells (C 1300, clone NB2A) in tissue culture was studied using direct immunofluorescence. Experiments were done in standard routine cultures and also those influenced by chemical modulators. There is a difference in the characteristic binding response between the growth culture cells (grown in presence of fetal calf serum) and differentiating culture cells (grown in absence of serum). Exposure to the toxin gives no visible effect on the cell division or viability in growth cultures; whereas in differentiating cells the processes are shortened and the adherence to the glass is diminished without involving significant cell death. The toxoid did not bind at all under the same experimental conditions. Since there was no biological effect in growth cultures we have called this binding ineffective, and in the case of the differentiating cells, effective binding. Stimulation of pinocytosis increases the uptake of toxin in both cultures. Presence of some surface bound toxin still remaining on the differentiating cells indicates the possibility of another sort of mechanism for internalization. Pre-treatment of the cells with neuraminidase or beta-galactosidase to alter the membrane gangliosides eliminates binding in growth cultures but not in differentiating cultures. From these results we suggest that even though the toxin may well bind to gangliosides, at least in the differentiating cultures they are not solely responsible for the fixation. The morphologically observed effective binding is probably that not related to gangliosides.
MeSH Terms
Binding Sites
Cell Membrane/metabolism
Cell Survival/drug effects
Cells, Cultured
Fluorescent Antibody Technique
Gangliosides/metabolism
Neuroblastoma/metabolism,pathology,ultrastructure
Tetanus Toxin/metabolism,pharmacology
Tetanus Toxoid/metabolism,pharmacology
Chemicals
Gangliosides
Tetanus Toxin
Tetanus Toxoid
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Zimmerman J M
Piffaretti J C
References (26)
26 references, click to expand
-
Action of Vibrio cholerae neuraminidase (sialidase) upon the surface of intact cells and their isolated sialolipid components.
J Biol Chem. 1973 Nov 10;248(21):7353-8
PMID: 4355577
-
Intraaxonal and extraaxonal transport of 125I-tetanus toxin in early local tetanus.
Naunyn Schmiedebergs Arch Pharmacol. 1975;290(4):357-73
PMID: 53793
-
Comparison between the retrograde axonal transport of nerve growth factor and tetanus toxin in motor, sensory and adrenergic neurons.
Brain Res. 1975 Nov 28;99(1):1-16
PMID: 52914
-
Dissociation of tetanus neurotoxin into two polypeptide fragments.
Biochem Biophys Res Commun. 1974 Apr 23;57(4):1257-62
PMID: 4208570
-
Neuraminidase treatment of adrenal cells increases their response to cholera enterotoxin.
Nature. 1974 Oct 11;251(5475):514-5
PMID: 4370646
-
Neurotransmitter metabolism in murine neuroblastoma cells.
Life Sci. 1976 Feb 1;18(3):267-78
PMID: 3710
-
PURIFICATION, COMPOSITION, AND MOLECULAR WEIGHT OF THE BETA-GALACTOSIDASE OF ESCHERICHIA COLI K12.
J Biol Chem. 1965 Jun;240:2468-77
PMID: 14304855
-
Uptake of foreign proteins by mammalian cells and the functions of pinocytosis.
Bull Schweiz Akad Med Wiss. 1969 Jul;24(5):363-84
PMID: 5376057
-
The regulation of pinocytosis in mouse macrophages. II. Factors inducing vesicle formation.
J Exp Med. 1967 Feb 1;125(2):213-32
PMID: 4225263
-
Cyclic adenosine 3',5'-monophosphate-dependent protein kinase of human erythrocyte membranes.
J Biol Chem. 1972 Oct 10;247(19):6135-9
PMID: 4346806
-
The chain composition of tetanus toxin.
Biochim Biophys Acta. 1973 Aug 30;317(2):277-85
PMID: 19999713
-
Tetanus toxin: direct evidence for retrograde intraaxonal transport.
Science. 1975 May 30;188(4191):945-7
PMID: 49080
-
Distribution of 125 I-tetanus toxin and 125 I-toxoid in rats with generalized tetanus, as influenced by antitoxin.
Naunyn Schmiedebergs Arch Pharmacol. 1973;276(3-4):327-40
PMID: 4268164
-
Chemical characterization of tetanus toxin and toxoid. Amino acid composition, number of SH and S-S groups and N-terminal amino acid.
Eur J Biochem. 1970 Nov;17(1):100-5
PMID: 5486573
-
The mechanism of action of tetanus toxin: effect on synaptic processes and some particular features of toxin binding by the nervous tissue.
Naunyn Schmiedebergs Arch Pharmacol. 1973;276(3-4):247-70
PMID: 4351283
-
Conjugation of fluorescein isothiocyanate to antibodies. I. Experiments on the conditions of conjugation.
Immunology. 1970 Jun;18(6):865-73
PMID: 5310665
-
Regulation of axon formation by clonal lines of a neural tumor.
Proc Natl Acad Sci U S A. 1970 May;66(1):160-7
PMID: 5273894
-
Enzymatic breakdown of tetanus toxin.
Biochem Biophys Res Commun. 1974 Apr 23;57(4):1263-70
PMID: 4208571
-
Neuronal tumor cells with excitable membranes grown in vitro.
Proc Natl Acad Sci U S A. 1969 Nov;64(3):1004-10
PMID: 5264132
-
Interaction of Vibrio cholerae enterotoxin with cell membranes.
Biochemistry. 1973 Aug 28;12(18):3547-58
PMID: 4731191
-
Establishment of functional clonal lines of neurons from mouse neuroblastoma.
Proc Natl Acad Sci U S A. 1969 Sep;64(1):311-5
PMID: 5263016
-
Immunochemistry of tetanus toxin. The nitration of tyrosyl residues in tetanus toxin.
Eur J Biochem. 1973 Nov 1;39(1):171-81
PMID: 4203744
-
Interaction of cultured mammalian cells with [125I] diphtheria toxin.
Infect Immun. 1975 Apr;11(4):675-84
PMID: 1120609
-
Chemical assay of the tetanus toxin receptor in nervous tissue.
J Gen Microbiol. 1959 Apr;20(2):301-9
PMID: 13654725
-
CHROMATOGRAPHIC SEPARATION OF HUMAN BRAIN GANGLIOSIDES.
J Neurochem. 1963 Sep;10:613-23
PMID: 14066623
-
Pathogenesis of local tetanus in rats: neural ascent of tetanus toxin.
Naunyn Schmiedebergs Arch Pharmacol. 1974;281(4):391-401
PMID: 4275259